US20060025072A1 - Extending wireless communication RF coverage inside building - Google Patents

Extending wireless communication RF coverage inside building Download PDF

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US20060025072A1
US20060025072A1 US10/901,655 US90165504A US2006025072A1 US 20060025072 A1 US20060025072 A1 US 20060025072A1 US 90165504 A US90165504 A US 90165504A US 2006025072 A1 US2006025072 A1 US 2006025072A1
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gain
antenna
repeater
assembly
antenna assembly
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US10/901,655
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US7406300B2 (en
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Vic Pan
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Nokia of America Corp
WSOU Investments LLC
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Lucent Technologies Inc
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Assigned to LUCENT TECHNOLOGIES, INC. reassignment LUCENT TECHNOLOGIES, INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: HONCHARENKO, WALTER, NARDOZZA, GREGG
Assigned to LUCENT TECHNOLOGIES, INC. reassignment LUCENT TECHNOLOGIES, INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: PAN, VIC
Priority to EP05254500A priority patent/EP1622287B1/en
Priority to DE602005006907T priority patent/DE602005006907D1/en
Priority to CNA2005100876948A priority patent/CN1728595A/en
Priority to KR1020050069619A priority patent/KR101156269B1/en
Priority to JP2005220110A priority patent/JP4824361B2/en
Publication of US20060025072A1 publication Critical patent/US20060025072A1/en
Publication of US7406300B2 publication Critical patent/US7406300B2/en
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/18TPC being performed according to specific parameters
    • H04W52/24TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters
    • H04W52/242TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters taking into account path loss
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/14Relay systems
    • H04B7/15Active relay systems
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/14Relay systems
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/38TPC being performed in particular situations
    • H04W52/46TPC being performed in particular situations in multi hop networks, e.g. wireless relay networks

Definitions

  • This invention generally relates to telecommunications. More particularly, this invention relates to wireless communication systems.
  • Wireless communication systems have grown in capability and popularity. There are now various wireless service providers that provide voice, data and video communication capabilities to mobile units such as cell phones, personal digital assistants and lap top computers. With the increase in the number of service providers and the increased technological capabilities, wireless communications have become more and more widely used.
  • the first approach which can be referred to as “RF building blasting from the outside in”, requires a repeater antenna site such as a rooftop or tower that is frequently prohibitively expensive or not attainable in many residential areas.
  • the repeater captures the outside RF macrocell signal, boosts it, and blasts the boosted signal towards buildings in the hope of overpowering their building penetration losses.
  • RF building blockage is uneven and the resulting inside RF coverage is unpredictable and often inadequate. There may not be sufficient inside signal levels where needed depending upon where inside the house a call is being made, the house location relative to the serving base station location, building construction, repeater site location, and orientation of the repeater antennas.
  • the second approach which employs inside and outside repeater antennas to bypass building penetration losses, uses an outside antenna to capture macrocell RF signals, a coax cable to bypass building penetration losses, a repeater for signal boosting, and one or more inside antennas to create inside RF coverage where desired.
  • the outside antenna frequently a Yagi, is installed on the house rooftop pointing at the serving macrocell, a long coax cable brings the RF signal inside, a repeater boosts the signal and feeds one or more inside antennas.
  • a low power repeater typically feeds a single inside antenna that may be integrated into the repeater housing.
  • a technician visit is frequently required to install equipment, point the Yagi, install the repeater and inside antenna and set the repeater gains. The need for a technician and the installation of cabling and the external antenna raises costs outside the reach of many homeowners and small enterprise owners.
  • Base station receiver desensitization arises when the repeater injects noise into the radio receiver raising its noise floor. Since the noise level increases within the radio receiver, higher receive signals are required to offset the increase in noise thus causing the “desensitization.” This is especially problematic for CDMA systems. If home repeaters were to be used on a widespread basis, there must be some accommodation that prevents base station receiver desensitization.
  • the physical path consists of pathloss between repeater antennas connected to the amplifier inputs and outputs and RF multipath. Whenever the repeater gain is set too high, the net path gain from amplifier output to input exceeds unity and the repeater amplifier then oscillates out of control rendering the repeater or base station inoperative. Repeater gains must be limited to avoid both positive feedback and base station receiver desensitization for proper operation of the repeater and the serving base station donor cell.
  • Repeaters typically include amplifier circuits designed to support multiple wireless CAIs (Common Air Interfaces) such as CDMA IS-95, CDMA 2000, UMTS, GSM, TDMA IS-136 and OFDMA. They currently do not have the ability to automatically set their amplifier gains to the highest possible setting while avoiding base station receiver desensitization and positive feedback. They do not generally exploit characteristics of a particular CAI to automatically set amplifier gains necessary to achieve the best possible inside performance. While some have positive feedback cancellation circuits, they can still oscillate out of control when there is insufficient isolation between repeater antennas. This can occur when the design of the antenna assembly is not integrated with the repeater amplifier circuit design. Others have circuits that automatically step the repeater gains back until positive feedback ceases but do not protect against base station receiver desensitization. Nor do they provide RF signal level thresholds that allow the repeater to only operate when a desired minimum inside link budget can be supported.
  • CAIs Common Air Interfaces
  • This invention goes beyond the current state of the art and provides improved RF coverage extension inside of buildings in an easily installed and economical manner.
  • One disclosed example method of communicating includes automatically adjusting a gain of a repeater antenna assembly based upon an estimated loss associated with a signal received at the repeater antenna assembly.
  • the estimated loss corresponds to the pathloss between the house or building where the repeater antenna assembly is situated and a serving base station. This estimate exploits a common attribute of all CAIs, namely that their received “access and control channel” signal strengths are inversely proportional to this loss. With such an estimate, it is possible to set repeater gains at their highest possible settings while avoiding base station receiver desensitization.
  • One example assembly integrates several features into a common overall design.
  • One feature is the ability to automatically set repeater gains to the highest possible setting for the best possible inside RF coverage to avoid base station receiver desensitization and positive feedback.
  • This example also has an integrated window mounted antenna assembly design that many home consumers can install without tools and without taking RF measurements.
  • This example also integrates the antenna assembly design with the automatic gain setting circuitry of the repeater amplifiers to avoid positive feedback. Internal circuits of this example permit the repeater to provide at least a minimum desired inside grade of service.
  • the repeater antenna assembly includes an outside antenna, an inside antenna, and bi-directional RF amplifiers.
  • a gain associated with the antenna assembly is automatically adjusted to provide the best possible RF coverage within the building structure avoiding base station receiver desensitization and positive feedback.
  • by maintaining a selected ratio between a loss from the base station to the repeater antenna assembly on the one hand and a gain of the repeater antenna assembly on the other hand provides the best possible RF coverage within the building and keeps the amplifier gain at a level that prevents base station receiver desensitization and avoids positive feedback.
  • an uplink gain of the repeater antenna assembly is kept the same as a downlink gain of the assembly. Typically, this balances the inside and outside link budgets as most macrocells are designed for balanced link budgets.
  • the power level of the received pilot signal associated with a CDMA/UMTS “access and control channel” is used to adjust the gain of the repeater antenna assembly that allows for finding the highest possible repeater gain while avoiding base station receiver desensitization.
  • the aggregate received signal power level is used to estimate the loss in CDMA/UMTS systems eliminating the need for pilot demodulating circuitry at diminished loss estimation accuracy. Gain offsets are described to take into account the diminished accuracy.
  • the technique is applied to GSM and its BCCH access and control channel.
  • One disclosed example repeater antenna assembly includes RF signal level indicators that identify when outside RF signal conditions can support a minimum desired inside link budget. Thus, operators can choose how reliable inside RF coverage should be by setting the RF signal level indicator thresholds. Other RF signal level indicators facilitate finding an optimal spot for the antenna assembly to avoid deep Rayleigh fades.
  • FIG. 1 schematically illustrates selected portions of a wireless communication system that includes an example embodiment of this invention.
  • FIG. 2 schematically illustrates an example antenna assembly useful in an embodiment of this invention.
  • FIG. 3 schematically illustrates an example electronic circuit useful in an embodiment of this invention
  • FIG. 4 graphically illustrates a tradeoff relationship between a desired link budget and loss.
  • FIG. 5 schematically depicts a positive feedback path.
  • FIG. 1 schematically illustrates a wireless communication system 20 showing selected portions of the system.
  • a base station 22 facilitates wireless communication with a plurality of mobile units 24 . Such communications occur in a known manner.
  • FIG. 1 is also well suited for providing wireless radio frequency (RF) signal coverage within a building 26 , which may be a home, a small enterprise, or part of an office building, for example.
  • a repeater antenna assembly 30 is associated with at least one window 32 of the building 26 .
  • the repeater antenna assembly 30 provides at least a minimum desired inside link budget to provide RF coverage within the building 26 based upon signals received from the base station 22 .
  • the example repeater antenna assembly 30 is designed to operate at the highest possible gains that avoid positive feedback and base station receiver desensitization.
  • Wireless CAIs contain a mobile access control channel whose received downlink power is inversely proportional to the net pathloss L between a serving base station and a repeater.
  • downlink pilot signals associated with generic CDMA systems CDMA IS-95, CDMA 2000, and UMTS
  • CDMA IS-95, CDMA 2000, and UMTS are transmitted at constant power at the base station so the received pilot power is inversely proportional to L.
  • Other examples are GSM with its BCCH channel, TDMA IS-136 with its DCCH channel, and AMPs with its analog control channel. So the method of estimating L depends on the particular CAI's access control channel.
  • L2 is the estimate of L based on just measuring the aggregate received RF signal (so no pilot demodulating circuits are needed)
  • P rcv ( ⁇ mw) is the total received power of the downlink carrier at the repeater
  • k′ is an offset parameter with k′>1.
  • L2 is an example of an estimate of the net pathloss for a generic CDMA CAI with an accuracy of 4 dB that does not require a pilot demodulating circuit.
  • the less accurate estimates of L require larger offsets to avoid desensitization.
  • the lower cost L2 estimate of L is assumed for a generic CDMA CAI.
  • estimates of L can be similarly obtained by measuring the received power in their access control channels similar to the expression for L1 for CDMA.
  • the aggregate received power P rcv is first boosted by an LNA 60 , then integrated to smooth the temporal fading common in RF signals by an RMS detector 62 , and then is digitized by an A/D circuit 64 .
  • the repeater amplifier gains are set identically.
  • k is less than 1/2.5 to avoid desensitization.
  • Other CAI embodiments can automatically set the repeater gains based on other estimates of L with appropriate accuracy offsets. These other embodiments rely on measuring the CAI access and control channel to estimate L as previously described. There are commercially available low cost chips that perform such D/A, A/D and table look up functions as depicted by the ADC 64 , DAC 68 , and microprocessor 66 in the example of FIG. 3 .
  • the lookup table is populated only with repeater gains less than those that cause positive feedback.
  • the positive feedback gain values depend upon the design of the antenna assembly.
  • FIG. 2 illustrates an example antenna assembly embodiment and FIG. 5 schematically illustrates the positive feedback path gain calculation 100 .
  • representative component RF specifications of the antenna assembly include: a lambda wavelength is 0.352941 meters, the coupling loss across the window 32 is 3 dB, the loss associated with the connecting cable 46 is 3 dB, the inside antenna gain is 6 dBi and the front-to-back ratio of the outside patch antenna is 25 dB.
  • FIG. 2 schematically shows one example window mount antenna assembly 30 .
  • an outside antenna 34 is supported on a base 36 .
  • a mounting surface 38 of the base 36 allows the base 36 to be secured to an outside surface of a window 32 , for example.
  • a hook and loop fastener arrangement is adhesively secured to the window and the mounting surface 38 is configured to be appropriately secured with the hook and loop fastener.
  • the mounting surface 38 includes an adhesive that is secured directly to a window surface.
  • a variety of mounting strategies may be utilized and those skilled in the art who have the benefit of this description will be able to select an appropriate mounting arrangement to meet the needs of their particular situation.
  • the example window repeater antenna assembly 30 includes an RF coupler 40 that is adapted to be supported on an oppositely facing inside of the window on which the mounting surface 38 is secured.
  • the RF coupler 40 includes a mounting surface 42 that can be secured to a window in a known manner, such as adhesively.
  • the base 36 and the RF coupler 40 are secured on opposite sides of a window 32 in a “sandwich” configuration such that the base 36 and the RF coupler 40 are directly aligned with each other on opposite sides of the window.
  • the glass or composite material of the window introduces some loss between the antenna 34 and RF coupler 40 .
  • the window material and coupler introduces a 3 dB coupling loss. The RF coupler 40 effectively picks up the RF signal detected by the antenna 34 outside of the building in a known manner.
  • the example RF coupler 40 has a cable connection 44 with a cable 46 , which is connected to a bi-directional RF amplifier 49 which also serves as a physical base for the inside antenna 48 .
  • a base 49 of the inside antenna 48 allows the inside antenna 48 to be conveniently located on a shelf, table or mounted on an interior wall, for example.
  • the cable 46 provides a direct connection between the RF coupler 40 and the bi-directional amplifier 49 and the inside antenna 48 and allows for adequate physical spacing between them to avoid positive feedback.
  • PG positive feedback path gain
  • the path gain is less than 0 dB, there will be no positive feedback.
  • the value of PG can be kept below 0 dB to avoid positive feedback.
  • the uplink gain is set to be equal to the downlink gain.
  • Table 1 contains several other examples operating at 850 MHz, 1.9 GHz and 2.1 GHz, respectively based on the example component RF specifications shown in FIG. 5 . These results are conservative as the path gain calculation assumes the worse case of the inside antenna facing the back of the outside antenna. In practice, these antennas will generally be facing away from each other. TABLE 1 Positive Feedback Gains ⁇ dB Ant Frequency Separation 850 1.9 2.1 R meters MHz GHz GHz 1 59 66 67 2 65 72 73 3 68 75 76
  • the outside antenna 34 and the inside antenna 48 are directional antennas.
  • the use of a directional outside antenna 34 reduces the pathloss to the serving macrocell and reduces RF interference from other macrocells. Thus, more homes can be covered and higher wireless data rates are achievable with directional outside antennas.
  • the use of a directional inside antenna 48 pointed inside directs most of the signal into the building 26 for greater RF efficiency.
  • the use of two directional antennas decreases the effective RF coupling between them, so higher repeater gains can be used without positive feedback.
  • At least the inside antenna 48 ground plane produces 90° directional with 6 dBi boresight gain and a 25 dB front-to-back ratio.
  • the operating frequency and the physical separation between the outside antenna 34 and the inside antenna 48 is sufficient for achieving RF amplifier gains up to approximately 60-76 dB in both directions as can be appreciated from Table 1, for example.
  • the example integrated window antenna is designed to be installable by the average home consumer to avoid a costly technician visit.
  • One significant advantage of the example repeater antenna assembly 30 is that it can be easily and conveniently installed on a window of a building without requiring modification to the building structure, without requiring any change to the wiring within the building, or without requiring special tools.
  • Another feature of the disclosed example repeater antenna assembly 30 is that it provides a visual indication such as a lit LED 50 (as illustrated in FIG. 3 ) to an individual when a strong enough outside RF signal is available so that so that a minimum desired level of inside pathloss can always be supported. This eliminates the need for a technician to take RF measurements.
  • the internal repeater circuitry allows the repeater to function only when this LED lights up. This provides the Wireless Service Provider the ability to always provide a minimum inside grade of RF coverage service. This feature prevents customer complaints by allowing the Wireless Service Provider to choose a minimum desired inside link budget.
  • the geographic position of the home or small enterprise might be such that the desired minimum inside link budget cannot be supported because of insufficient received outside RF signal. When this happens, no LED 50 lights up and the repeater does not operate.
  • an inside mobile can transmit at a power level R dB hotter than if it were positioned where the outside antenna 34 is positioned. That residual supplements the repeater gain in providing the inside link budget.
  • homes physically positioned closer to the serving macrocell have greater residual link budget than those positioned further away.
  • homes positioned closer generally have better inside coverage. They also have stronger “access and control channel” signal strengths outside and so the threshold value at which a first LED 50 lights up determines how much residual and how much inside link budget is supported. So the LED threshold value determines the minimum desired inside link budget.
  • the LED threshold value depends on a link budget methodology that trades off the desired minimum inside link budget for maximum allowable repeater gain, and available link budget residual.
  • the desired minimum inside link budget value is a service provider policy choice.
  • the maximum allowable repeater gain depends on antenna assembly design and operating frequency as described earlier.
  • the available link budget residual depends on the position of the house with respect to the position of the serving base station.
  • the details of the link budget methodology depend upon the treatment of noise and interference specific to a particular CAI. Those skilled in the art will know how to insert the relevant details for their particular CAI and antenna assembly from this generic description.
  • FIG. 4 shows an illustrative tradeoff between the desired inside link budget D inside versus the maximum loss for the following parameter values:
  • the minimum RF signal strength indicator such as the LED's 50 , is triggered at the received RF signal levels corresponding to the maximum loss .
  • the triggering level depends upon the CAI and antenna assembly design.
  • L P 0 ⁇ P rcvpilot ⁇ dB
  • L P 0 ⁇ P rcv ⁇ 10 log( k′ ) ⁇ dB
  • a second repeater antenna assembly 80 is associated with the building 26 .
  • one repeater antenna assembly is tuned to a frequency dedicated to voice communication while the other repeater antenna assembly is turned to a frequency dedicated to data communications.
  • wireless can be used for voice (i.e., POTS) communication and for Internet service to replace a line-based DSL connection, for example.
  • the repeater can be tuned to support single or multiple carriers supporting voice only, data only or voice and data combined.
  • the repeater can be tuned to support CDMA IS-95, CDMA 1X, CDMA DO, CDMA DV, UMTS, HSDPA, GSM, GPRS, EDGE and OFDMA.
  • an appropriate number of repeater antenna assemblies may be selected. Given the gain adjustment and link budget balancing techniques disclosed above, having multiple repeater antenna assemblies designed according to an embodiment of this invention does not pose a risk of positive feedback or base station receiver desensitization.

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Abstract

A wireless communication system includes at least one repeater antenna assembly for providing adequate RF coverage within a building, such as a home. An example repeater antenna assembly has an automatically adjustable gain that is controlled responsive to a pathloss associated with a received signal to avoid base station transceiver desensitization and positive feedback. A disclosed assembly avoids base station desensitization and positive feedback. Another disclosed technique maintains a selected minimum link budget within the building.

Description

    FIELD OF THE INVENTION
  • This invention generally relates to telecommunications. More particularly, this invention relates to wireless communication systems.
  • DESCRIPTION OF THE RELATED ART
  • Wireless communication systems have grown in capability and popularity. There are now various wireless service providers that provide voice, data and video communication capabilities to mobile units such as cell phones, personal digital assistants and lap top computers. With the increase in the number of service providers and the increased technological capabilities, wireless communications have become more and more widely used.
  • One limitation on such communications has been that the ability to obtain an adequate signal within a home, for example, can be too limited to provide confidence for an individual to rely solely upon a mobile unit for all telecommunications from their home. There are a variety of factors contributing to the poor radio frequency (RF) coverage in and around many homes. For example, the metallic content of many home or building structures can provide an RF block or otherwise interfere with adequate signal transmission. In many homes the siding on the exterior of the building, the insulation or window treatments may include metal or foil, which reduces RF coverage within the home. Additionally, the various metal objects and the structure of the internal walls, for example, in many cases prevent adequate interior RF coverage so that an individual cannot rely upon their mobile unit on a consistent basis in all locations within the home.
  • There is a need for an ability to provide adequate RF coverage within homes or small business buildings, for example, so that mobile units can be consistently used within such structures. Additionally, it may be desirable for some individuals to eliminate their line-based telephone system and high speed Internet access and to rely exclusively on wireless communications.
  • There are two conventional repeater approaches to providing RF coverage within buildings (“lighting up” buildings). The first approach, which can be referred to as “RF building blasting from the outside in”, requires a repeater antenna site such as a rooftop or tower that is frequently prohibitively expensive or not attainable in many residential areas. The repeater captures the outside RF macrocell signal, boosts it, and blasts the boosted signal towards buildings in the hope of overpowering their building penetration losses. Unfortunately, RF building blockage is uneven and the resulting inside RF coverage is unpredictable and often inadequate. There may not be sufficient inside signal levels where needed depending upon where inside the house a call is being made, the house location relative to the serving base station location, building construction, repeater site location, and orientation of the repeater antennas.
  • The second approach, which employs inside and outside repeater antennas to bypass building penetration losses, uses an outside antenna to capture macrocell RF signals, a coax cable to bypass building penetration losses, a repeater for signal boosting, and one or more inside antennas to create inside RF coverage where desired. The outside antenna, frequently a Yagi, is installed on the house rooftop pointing at the serving macrocell, a long coax cable brings the RF signal inside, a repeater boosts the signal and feeds one or more inside antennas. For homes, small enterprises, and small areas within large buildings such as conference rooms, a low power repeater typically feeds a single inside antenna that may be integrated into the repeater housing. A technician visit is frequently required to install equipment, point the Yagi, install the repeater and inside antenna and set the repeater gains. The need for a technician and the installation of cabling and the external antenna raises costs outside the reach of many homeowners and small enterprise owners.
  • A significant challenge to a designer of a system to maximize RF coverage into buildings such as homes, for example, is that increasing the amplifier gains generally increases inside RF coverage until either base station receiver desensitization or repeater positive feedback occurs. When either one of these conditions arises, the base station or the repeater can no longer function properly resulting in loss of inside coverage, outside macrocell coverage and traffic capacity or both. Thus, the best possible inside RF coverage occurs when the repeater gains are set to their highest possible settings while avoiding base station receiver desensitization and repeater amplifier positive feedback.
  • Base station receiver desensitization arises when the repeater injects noise into the radio receiver raising its noise floor. Since the noise level increases within the radio receiver, higher receive signals are required to offset the increase in noise thus causing the “desensitization.” This is especially problematic for CDMA systems. If home repeaters were to be used on a widespread basis, there must be some accommodation that prevents base station receiver desensitization.
  • There is an RF path between repeater amplifier outputs and inputs. The physical path consists of pathloss between repeater antennas connected to the amplifier inputs and outputs and RF multipath. Whenever the repeater gain is set too high, the net path gain from amplifier output to input exceeds unity and the repeater amplifier then oscillates out of control rendering the repeater or base station inoperative. Repeater gains must be limited to avoid both positive feedback and base station receiver desensitization for proper operation of the repeater and the serving base station donor cell.
  • Repeaters typically include amplifier circuits designed to support multiple wireless CAIs (Common Air Interfaces) such as CDMA IS-95, CDMA 2000, UMTS, GSM, TDMA IS-136 and OFDMA. They currently do not have the ability to automatically set their amplifier gains to the highest possible setting while avoiding base station receiver desensitization and positive feedback. They do not generally exploit characteristics of a particular CAI to automatically set amplifier gains necessary to achieve the best possible inside performance. While some have positive feedback cancellation circuits, they can still oscillate out of control when there is insufficient isolation between repeater antennas. This can occur when the design of the antenna assembly is not integrated with the repeater amplifier circuit design. Others have circuits that automatically step the repeater gains back until positive feedback ceases but do not protect against base station receiver desensitization. Nor do they provide RF signal level thresholds that allow the repeater to only operate when a desired minimum inside link budget can be supported.
  • This invention goes beyond the current state of the art and provides improved RF coverage extension inside of buildings in an easily installed and economical manner.
  • SUMMARY OF THE INVENTION
  • One disclosed example method of communicating includes automatically adjusting a gain of a repeater antenna assembly based upon an estimated loss associated with a signal received at the repeater antenna assembly. In one example, the estimated loss corresponds to the pathloss between the house or building where the repeater antenna assembly is situated and a serving base station. This estimate exploits a common attribute of all CAIs, namely that their received “access and control channel” signal strengths are inversely proportional to this loss. With such an estimate, it is possible to set repeater gains at their highest possible settings while avoiding base station receiver desensitization.
  • One example assembly integrates several features into a common overall design. One feature is the ability to automatically set repeater gains to the highest possible setting for the best possible inside RF coverage to avoid base station receiver desensitization and positive feedback. This example also has an integrated window mounted antenna assembly design that many home consumers can install without tools and without taking RF measurements. This example also integrates the antenna assembly design with the automatic gain setting circuitry of the repeater amplifiers to avoid positive feedback. Internal circuits of this example permit the repeater to provide at least a minimum desired inside grade of service.
  • In one example, the repeater antenna assembly includes an outside antenna, an inside antenna, and bi-directional RF amplifiers. A gain associated with the antenna assembly is automatically adjusted to provide the best possible RF coverage within the building structure avoiding base station receiver desensitization and positive feedback. In one example, by maintaining a selected ratio between a loss from the base station to the repeater antenna assembly on the one hand and a gain of the repeater antenna assembly on the other hand provides the best possible RF coverage within the building and keeps the amplifier gain at a level that prevents base station receiver desensitization and avoids positive feedback.
  • In one example, an uplink gain of the repeater antenna assembly is kept the same as a downlink gain of the assembly. Typically, this balances the inside and outside link budgets as most macrocells are designed for balanced link budgets.
  • In one example, the power level of the received pilot signal associated with a CDMA/UMTS “access and control channel” is used to adjust the gain of the repeater antenna assembly that allows for finding the highest possible repeater gain while avoiding base station receiver desensitization. In another example, the aggregate received signal power level is used to estimate the loss in CDMA/UMTS systems eliminating the need for pilot demodulating circuitry at diminished loss estimation accuracy. Gain offsets are described to take into account the diminished accuracy. In yet again another example, the technique is applied to GSM and its BCCH access and control channel.
  • Even with the highest possible repeater gains, there may not be enough signal boost to provide the desired minimum inside RF coverage. One disclosed example repeater antenna assembly includes RF signal level indicators that identify when outside RF signal conditions can support a minimum desired inside link budget. Thus, operators can choose how reliable inside RF coverage should be by setting the RF signal level indicator thresholds. Other RF signal level indicators facilitate finding an optimal spot for the antenna assembly to avoid deep Rayleigh fades.
  • The various features and advantages of this invention will become apparent to those skilled in the art from the following detailed description. The drawings that accompany the detailed description can be briefly described as follows.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 schematically illustrates selected portions of a wireless communication system that includes an example embodiment of this invention.
  • FIG. 2 schematically illustrates an example antenna assembly useful in an embodiment of this invention.
  • FIG. 3 schematically illustrates an example electronic circuit useful in an embodiment of this invention
  • FIG. 4 graphically illustrates a tradeoff relationship between a desired link budget and loss.
  • FIG. 5 schematically depicts a positive feedback path.
  • DETAILED DESCRIPTION
  • FIG. 1 schematically illustrates a wireless communication system 20 showing selected portions of the system. A base station 22 facilitates wireless communication with a plurality of mobile units 24. Such communications occur in a known manner.
  • The example of FIG. 1 is also well suited for providing wireless radio frequency (RF) signal coverage within a building 26, which may be a home, a small enterprise, or part of an office building, for example. In the illustrated example, a repeater antenna assembly 30 is associated with at least one window 32 of the building 26. The repeater antenna assembly 30 provides at least a minimum desired inside link budget to provide RF coverage within the building 26 based upon signals received from the base station 22. The example repeater antenna assembly 30 is designed to operate at the highest possible gains that avoid positive feedback and base station receiver desensitization.
  • Base station receiver desensitization does not occur when G/L<1/F where G is the repeater uplink gain, L is the net loss between the repeater and the base station and F is the noise factor of the repeater amplifier 49 (all in dimensionless units). Avoiding base station receiver desensitization in one example includes estimating the loss L and then setting the repeater gain so that G=kL/F where k<1 is an offset parameter that determines how close to operate the repeater amplifier to base station desensitization. The loss L to each repeater antenna assembly is generally different so each repeater will have a custom gain setting.
  • Wireless CAIs contain a mobile access control channel whose received downlink power is inversely proportional to the net pathloss L between a serving base station and a repeater. For example, downlink pilot signals associated with generic CDMA systems (CDMA IS-95, CDMA 2000, and UMTS) are transmitted at constant power at the base station so the received pilot power is inversely proportional to L. Other examples are GSM with its BCCH channel, TDMA IS-136 with its DCCH channel, and AMPs with its analog control channel. So the method of estimating L depends on the particular CAI's access control channel.
  • One disclosed method of estimating the net pathloss L includes demodulating the received pilot Prcvpilot (˜mw) in a generic CDMA system and measuring its power at the repeater. If P0 (˜mw) is the pilot power at the base station (a known base station parameter value), then L1=P0/Prcvpilot (˜dimensionless) where L1 is the estimate of L based on demodulating the received CDMA pilot. Another disclosed method of estimating the net pathloss L is to use L2=k′P0/Prcv where L2 is the estimate of L based on just measuring the aggregate received RF signal (so no pilot demodulating circuits are needed), Prcv (˜mw) is the total received power of the downlink carrier at the repeater and k′ is an offset parameter with k′>1. In the generic example of CDMA, P0 is a known base station configuration parameter frequently chosen as 15% of the maximum downlink base station power (typically 3000 mw) and the additional traffic power can make Prcv up to 8 dB higher. To be within 4 dB (or within a factor of 2.5) of the received pilot power, chose k′=2.5. Thus, L2 is an example of an estimate of the net pathloss for a generic CDMA CAI with an accuracy of 4 dB that does not require a pilot demodulating circuit. The less accurate estimates of L require larger offsets to avoid desensitization. For discussion purposes, the lower cost L2 estimate of L is assumed for a generic CDMA CAI. For GSM, TDMA, or AMPS, estimates of L can be similarly obtained by measuring the received power in their access control channels similar to the expression for L1 for CDMA. For example, for a GSM system, a 200 KHz receiver tuned to the BCCH channel would measure the aggregate power received Prcv and the estimate for L would be L3=P0GSM/Prcv where P0GSM is a known GSM base station power level. Similar expressions can be derived for TDMA, AMPS, and other CAIs.
  • Referring to FIGS. 2 and 3, which includes using the net loss estimate L2=k′P0/Prcv to automatically set the repeater gains, the aggregate received power Prcv is first boosted by an LNA 60, then integrated to smooth the temporal fading common in RF signals by an RMS detector 62, and then is digitized by an A/D circuit 64. A table lookup within a microprocessor 66 maps Prcv to the downlink repeater gain Gdown=k′kP0/Prcv using the estimate for L as L2 and a D/A converter 68 converts the digital signal back to analog. This gain setting is fed to an uplink automatic gain control circuit 70 and a downlink automatic gain control circuit 72. In this example the repeater amplifier gains are set identically. Thus, the repeater gains are set in accordance with G=kL2/F so that base station receiver desensitization will not occur with sufficient offset k to compensate for the inaccuracy of the estimate of L. For an example CDMA embodiment, k is less than 1/2.5 to avoid desensitization. Other CAI embodiments can automatically set the repeater gains based on other estimates of L with appropriate accuracy offsets. These other embodiments rely on measuring the CAI access and control channel to estimate L as previously described. There are commercially available low cost chips that perform such D/A, A/D and table look up functions as depicted by the ADC 64, DAC 68, and microprocessor 66 in the example of FIG. 3.
  • To avoid positive feedback, the lookup table is populated only with repeater gains less than those that cause positive feedback. This integrates the antenna assembly design into the automatic repeater gain circuitry. The positive feedback gain values depend upon the design of the antenna assembly. FIG. 2 illustrates an example antenna assembly embodiment and FIG. 5 schematically illustrates the positive feedback path gain calculation 100. In the illustrated example, representative component RF specifications of the antenna assembly include: a lambda wavelength is 0.352941 meters, the coupling loss across the window 32 is 3 dB, the loss associated with the connecting cable 46 is 3 dB, the inside antenna gain is 6 dBi and the front-to-back ratio of the outside patch antenna is 25 dB. Table 1 below summarizes the maximum positive feedback repeater gains for three different operating frequencies and three different integrated antenna designs involving antenna separations of 1, 2, and 3 meters based on calculations contained below.
  • FIG. 2 schematically shows one example window mount antenna assembly 30. In this example, an outside antenna 34 is supported on a base 36. A mounting surface 38 of the base 36 allows the base 36 to be secured to an outside surface of a window 32, for example. In one example, a hook and loop fastener arrangement is adhesively secured to the window and the mounting surface 38 is configured to be appropriately secured with the hook and loop fastener. In another example, the mounting surface 38 includes an adhesive that is secured directly to a window surface. A variety of mounting strategies may be utilized and those skilled in the art who have the benefit of this description will be able to select an appropriate mounting arrangement to meet the needs of their particular situation.
  • The example window repeater antenna assembly 30 includes an RF coupler 40 that is adapted to be supported on an oppositely facing inside of the window on which the mounting surface 38 is secured. In this example, the RF coupler 40 includes a mounting surface 42 that can be secured to a window in a known manner, such as adhesively.
  • In one example, the base 36 and the RF coupler 40 are secured on opposite sides of a window 32 in a “sandwich” configuration such that the base 36 and the RF coupler 40 are directly aligned with each other on opposite sides of the window. In such an arrangement, the glass or composite material of the window introduces some loss between the antenna 34 and RF coupler 40. In one example, the window material and coupler introduces a 3 dB coupling loss. The RF coupler 40 effectively picks up the RF signal detected by the antenna 34 outside of the building in a known manner.
  • The example RF coupler 40 has a cable connection 44 with a cable 46, which is connected to a bi-directional RF amplifier 49 which also serves as a physical base for the inside antenna 48. Various locations within the building can be selected for the inside antenna 48. In one example, a base 49 of the inside antenna 48 allows the inside antenna 48 to be conveniently located on a shelf, table or mounted on an interior wall, for example. The cable 46 provides a direct connection between the RF coupler 40 and the bi-directional amplifier 49 and the inside antenna 48 and allows for adequate physical spacing between them to avoid positive feedback.
  • There are a number of sources contributing to positive feedback. For example, the front to back ratio of the outside antenna 34, the RF coupler 40 loss, the pathloss between the inside antenna 48 and the back of the outside antenna 34, the gain of the inside antenna 48, the cable loss 46, and the amplifier gain of the assembly 49, all may contribute to positive feedback. These example factors can be combined for determining whether positive feedback exists, given a set of RF component specifications. One example positive feedback path gain (PG) is schematically shown in FIG. 5 and can be expressed by the following equation:
    PG=−L cable +G inside −L p1 −L couple −L feedback −L couple +G amp
  • Provided that the path gain is less than 0 dB, there will be no positive feedback. By limiting the gain Gamp of the amplifier of the repeater antenna assembly 49 and setting a minimum distance between the antennas 34 and 48, the value of PG can be kept below 0 dB to avoid positive feedback. In one example, the gain Gp1 of the path loss corresponding to the path loss Lp1 can be expressed as follows:
    G p1=10 log (λ2/(4πR)2)dB,
    where
      • R is the distance between the outside antenna 34 and the inside antenna 48; and
      • λ is the wavelength of the operating frequency in meters.
  • In one example, provided that the distance R between the antennas is kept at least one meter and the amplifier gain is kept at or below 60 dB, there will be no positive feedback. In the discussed example, keeping the downlink gain below 60 dB avoids positive feedback so the look up table in the microprocessor 66 would be populated with gains less than 60 dB. In one example, the uplink gain is set to be equal to the downlink gain.
  • Other separation distances between the antennas may be useful, depending on the system configuration and operating parameters such as operating frequency. Table 1 contains several other examples operating at 850 MHz, 1.9 GHz and 2.1 GHz, respectively based on the example component RF specifications shown in FIG. 5. These results are conservative as the path gain calculation assumes the worse case of the inside antenna facing the back of the outside antenna. In practice, these antennas will generally be facing away from each other.
    TABLE 1
    Positive Feedback Gains˜dB
    Ant Frequency
    Separation 850 1.9 2.1
    R meters MHz GHz GHz
    1 59 66 67
    2 65 72 73
    3 68 75 76
  • In one example, the outside antenna 34 and the inside antenna 48 are directional antennas. The use of a directional outside antenna 34 reduces the pathloss to the serving macrocell and reduces RF interference from other macrocells. Thus, more homes can be covered and higher wireless data rates are achievable with directional outside antennas. The use of a directional inside antenna 48 pointed inside directs most of the signal into the building 26 for greater RF efficiency. The use of two directional antennas decreases the effective RF coupling between them, so higher repeater gains can be used without positive feedback. These are some of the key antenna design considerations in integrating the antenna design with the automatic gain circuitry. In one example, at least the inside antenna 48 ground plane produces 90° directional with 6 dBi boresight gain and a 25 dB front-to-back ratio. In some examples, the operating frequency and the physical separation between the outside antenna 34 and the inside antenna 48 is sufficient for achieving RF amplifier gains up to approximately 60-76 dB in both directions as can be appreciated from Table 1, for example.
  • The example integrated window antenna is designed to be installable by the average home consumer to avoid a costly technician visit. One significant advantage of the example repeater antenna assembly 30 is that it can be easily and conveniently installed on a window of a building without requiring modification to the building structure, without requiring any change to the wiring within the building, or without requiring special tools.
  • Another feature of the disclosed example repeater antenna assembly 30 is that it provides a visual indication such as a lit LED 50 (as illustrated in FIG. 3) to an individual when a strong enough outside RF signal is available so that so that a minimum desired level of inside pathloss can always be supported. This eliminates the need for a technician to take RF measurements. The internal repeater circuitry allows the repeater to function only when this LED lights up. This provides the Wireless Service Provider the ability to always provide a minimum inside grade of RF coverage service. This feature prevents customer complaints by allowing the Wireless Service Provider to choose a minimum desired inside link budget.
  • Rayleigh fading further complicates the positioning of the outside antenna 34. As is well known, moving the outside antenna just a few inches can produce deep signal fades of 20-25 dB. These deep fades can dramatically reduce the inside link budget or may render the repeater antenna assembly 30 not useable at a particular house. By providing additional visual indications of received RF signal strength, (i.e., a plurality of sequentially lit LEDs to signify stronger received RF signals) it will be possible for the home consumer to find the antenna positions out of Rayleigh fades so that minimum or better than minimum inside link budget is supported.
  • The geographic position of the home or small enterprise might be such that the desired minimum inside link budget cannot be supported because of insufficient received outside RF signal. When this happens, no LED 50 lights up and the repeater does not operate. Where homes are physically positioned such that there is a “residual” or leftover macrocell link budget R, an inside mobile can transmit at a power level R dB hotter than if it were positioned where the outside antenna 34 is positioned. That residual supplements the repeater gain in providing the inside link budget.
  • Generally, homes physically positioned closer to the serving macrocell have greater residual link budget than those positioned further away. Thus, homes positioned closer generally have better inside coverage. They also have stronger “access and control channel” signal strengths outside and so the threshold value at which a first LED 50 lights up determines how much residual and how much inside link budget is supported. So the LED threshold value determines the minimum desired inside link budget.
  • The LED threshold value depends on a link budget methodology that trades off the desired minimum inside link budget for maximum allowable repeater gain, and available link budget residual. The desired minimum inside link budget value is a service provider policy choice. The maximum allowable repeater gain depends on antenna assembly design and operating frequency as described earlier. The available link budget residual depends on the position of the house with respect to the position of the serving base station. The details of the link budget methodology depend upon the treatment of noise and interference specific to a particular CAI. Those skilled in the art will know how to insert the relevant details for their particular CAI and antenna assembly from this generic description.
  • The most intuitive definition of link budget “residual” R is the difference between the maximum and actual transmit mobile power (in dB) when the mobile is positioned exactly where the outside antenna is placed. With a balanced donor cell link budget, the residual can also be mathematically expressed as
    R=M−˜dB
    where
      • R is the residual as intuitively defined ˜dB
      • M is the donor macrocell link budget specific to a CAI exclusive of building or vehicular penetration losses ˜dB, antenna gains are in ˜dBi
      • Figure US20060025072A1-20060202-P00001
        is the loss between the base station amplifier output and the spot outside the window where the outside repeater antenna is placed ˜dB.
  • Notice
    Figure US20060025072A1-20060202-P00001
    is defined slightly differently than L. More rigorously, L is defined as the loss between the serving base station amplifier output and input to the downlink repeater amplifier.
    Figure US20060025072A1-20060202-P00001
    and L are related by
    L=−Ant outside +C1 ˜dB
    where
      • C1 is the cable and RF coupling loss from the outside antenna terminals to the input to the downlink repeater amplifier ˜dB
      • Antoutside=gain of the outside repeater antenna ˜dBi
        Therefore, the residual R referenced at the input to the downlink repeater amplifier is given by
        R′=R+Ant outside −C1 ˜dB
        where
      • R′ is the residual referenced at the input to the downlink repeater amplifier ˜dB
  • The inside link budget LBinside is given by
    LB inside =R′+G+Ant inside ˜dB
    where
      • LBinside is the inside link budget or inside pathloss ˜dB
      • G is the automatically set gain of the repeater amplifiers ˜dB
      • Antinside is the gain of the inside antenna ˜dBi
  • The inside link budget LBinside can be expressed in terms of the intuitive residual R
    LB inside =R+G+Ant inside +Ant outside −C1˜dB for the set L
      • for which G<Gfb and
        LB inside =R+G fb +Ant inside +Ant outside −C1˜dB otherwise
        where
      • R and G are monotonic functions of L ˜dB
      • Gfb ˜dB is the maximum gain entered into the lookup table to avoid positive feedback and is dependent upon the antenna assembly design
        Recall, the repeater gains are automatically set based on an estimate of L such that G<Gfb to avoid positive feedback as
        G=L−+K for all L such that G<G fb ˜dB
        G=Gfb˜dB otherwise
        where
      • G is the automatically set uplink and downlink repeater gains ˜dB
      • Figure US20060025072A1-20060202-P00002
        is the noise figure of the repeater amplifiers ˜dB,
        Figure US20060025072A1-20060202-P00002
        =10 log(F)
      • K=10 log(k), k<1 is the offset parameter defined earlier to take into account of the accuracy of estimating L.
  • For G<Gfb,
    L=G+−K or
    Figure US20060025072A1-20060202-P00001
    =G+−K+Ant outside −C1
    M−R=G+−K+Ant outside −C1
    R=M−G−+K−Ant outside +C1 ˜dB
    So that the inside link budget becomes
    LB inside =M−+K+Ant inside ˜dB, G<G fb
  • For G=Gfb, choose a desired minimum inside link budget Dinside ˜dB.
  • Then the residual must satisfy
    R>D inside −G fb −Ant inside −Ant outside +C1 ˜dB
    Houses must be positioned within the serving donor macrocell with pathloss
    Figure US20060025072A1-20060202-P00001
    ˜dB to achieve the minimum desired inside link budget:
    Figure US20060025072A1-20060202-P00001
    <M−D inside +G fb +Ant inside +Ant outside −C1 ˜dB
    The largest value
    Figure US20060025072A1-20060202-P00001
    ,
    Figure US20060025072A1-20060202-P00003
    is given by
    Figure US20060025072A1-20060202-P00003
    =M−D inside +G fb +Ant inside +Ant outside −C1 ˜dB
  • FIG. 4 shows an illustrative tradeoff between the desired inside link budget Dinside versus the maximum loss
    Figure US20060025072A1-20060202-P00003
    for the following parameter values:
      • M=154 dB=a macrocell link budget exclusive of building or vehicular penetration losses
      • Gfb=70 dB as supported by the antenna assembly design as illustrated by one of the embodiments in Table 1
      • Antinside+Antoutside−C1=6 dB
        FIG. 4 includes a plot 80 that shows how the greater the desired inside link budget, the less maximum loss
        Figure US20060025072A1-20060202-P00001
        there can be to the served home or small enterprise from the serving donor macrocell. This means the fewer homes that are covered by repeaters, the greater the minimum desired inside link budget. The exact tradeoff will depend upon the particular CAI link budget, operating frequency, and antenna assembly used.
  • The minimum RF signal strength indicator, such as the LED's 50, is triggered at the received RF signal levels corresponding to the maximum loss
    Figure US20060025072A1-20060202-P00003
    . The triggering level depends upon the CAI and antenna assembly design. For the generic CDMA CAI embodiment using the L1 estimate for loss L,
    L=P 0 −P rcvpilot ˜dB
    where
      • P0 is the pilot power transmitted at the base station ˜dBm
      • Prcvpilot is the received pilot power at the input to the repeater ˜dBm
        Since L=
        Figure US20060025072A1-20060202-P00001
        −Antoutside+C1 ˜dB, at the maximum loss
        Figure US20060025072A1-20060202-P00003
        , the weakest LED RF signal strength indicator is adjusted to indicate minimum RF signal power of
        P rcvpilotmin =P 0 −+Ant outside −C1 ˜dBm or
        P rcvpilotmin =P 0 −M+D inside −G fb −Ant inside −C1 ˜dBm
        where
      • Prcvpilotmin=minimum RF signal indicator threshold ˜dBm
      • Dinside=minimum desired inside link budget ˜dB
      • Gfb=maximum gain in the lookup table to prevent positive feedback ˜dB
        The additional RF signal strength indicators would be set at 5 to 10 dB steps higher to allow antenna positioning to avoid the Rayleigh fades.
  • For the generic CDMA CAI embodiment using the L2 estimate for loss L,
    L=P 0 −P rcv−10 log(k′)˜dB
    where
      • P0 is the pilot power transmitted at the base station ˜dBm
      • Prcv is the aggregate received power at the input to the repeater ˜dBm
      • k′ is the offset parameter k′>1 defined in the definition of L2 ˜dimensionless
        Since L=
        Figure US20060025072A1-20060202-P00001
        −Antoutside+C1 ˜dB, at the maximum loss
        Figure US20060025072A1-20060202-P00003
        , the weakest LED indicator is adjusted to indicate minimum RF signal power of
        P rcvmin =P 0−10 log(k′)−
        Figure US20060025072A1-20060202-P00003
        +Ant outside−C1 ˜dBm or
        P rcvmin =P 0−10 log(k′)−M+D inside −G fb −Ant inside ˜dBm
        where
      • Prcvmin=minimum RF signal indicator threshold ˜dBm
      • Dinside=minimum desired inside link budget ˜dB
      • Gfb=maximum gain in the lookup table to prevent positive feedback ˜dB
        Similar other LED thresholds can be calculated for other estimates of L and other CAI embodiments.
  • Returning to FIG. 1, a second repeater antenna assembly 80 is associated with the building 26. In this example, one repeater antenna assembly is tuned to a frequency dedicated to voice communication while the other repeater antenna assembly is turned to a frequency dedicated to data communications. In this example, wireless can be used for voice (i.e., POTS) communication and for Internet service to replace a line-based DSL connection, for example. The repeater can be tuned to support single or multiple carriers supporting voice only, data only or voice and data combined. For example, the repeater can be tuned to support CDMA IS-95, CDMA 1X, CDMA DO, CDMA DV, UMTS, HSDPA, GSM, GPRS, EDGE and OFDMA.
  • Depending on the different types of communication for which a mobile unit would be used relying upon adequate RF coverage within the building 26, an appropriate number of repeater antenna assemblies may be selected. Given the gain adjustment and link budget balancing techniques disclosed above, having multiple repeater antenna assemblies designed according to an embodiment of this invention does not pose a risk of positive feedback or base station receiver desensitization.
  • The preceding description is exemplary rather than limiting in nature. Variations and modifications to the disclosed examples may become apparent to those skilled in the art that do not necessarily depart from the essence of this invention. The scope of legal protection given to this invention can only be determined by studying the following claims.

Claims (20)

1. A method of communicating using a repeater antenna assembly, comprising:
automatically adjusting a gain of the repeater antenna assembly based upon a pathloss associated with the repeater antenna assembly.
2. The method of claim 1, comprising:
automatically estimating the pathloss; and
automatically adjusting the gain to satisfy a desired ratio of the gain to the estimated loss.
3. The method of claim 1, comprising:
determining a strength of a signal received by the repeater antenna assembly;
determining the estimated loss based upon the determined strength.
4. The method of claim 3, comprising determining the strength based upon a selected channel of the received signal.
5. The method of claim 1, comprising:
determining a strength of a signal received by the repeater antenna assembly; and
providing an indication if the determined strength exceeds a threshold that corresponds to a minimum desired link budget.
6. The method of claim 5, comprising adjusting the indication based on the determined strength.
7. The method of claim 5, comprising providing a visual indication.
8. The method of claim 1, comprising:
assigning a first repeater antenna assembly to a first frequency that is dedicated to at least one of data or voice communication; and
assigning a second repeater antenna assembly to a second frequency that is dedicated to at least the other of data or voice communication.
9. The method of claim 1, comprising setting the gain at a maximum that corresponds to a stable repeater antenna assembly.
10. The method of claim 9, wherein the stable repeater antenna assembly comprises an inside antenna and an outside antenna and the method comprises setting the gain and a distance between the antennas such that there is no positive feedback associated with the antennas.
11. The method of claim 1, comprising setting the gain at a maximum that corresponds to a stable base station operation.
12. The method of claim 1, comprising setting a downlink gain equal to an uplink gain.
13. The method of claim 1, comprising setting the gain to maintain a minimum link budget associated with the repeater antenna assembly.
14. A repeater antenna assembly, comprising:
a first antenna;
a second antenna;
a coupler for coupling the first and second antennas, the coupler having an automated gain adjustor that automatically adjusts a gain of the assembly responsive to a pathloss associated with the first antenna.
15. The assembly of claim 14, wherein the automated gain adjustor uses a strength of a signal received by the first antenna as an indication of the pathloss and comprising an indicator for providing an indication of the signal strength.
16. The assembly of claim 15, wherein the indicator comprises a visible indicator that provides a visible indication corresponding to the signal strength.
17. The assembly of claim 14, wherein the automated gain adjustor sets an uplink gain of the amplifier approximately equal to a downlink gain of the amplifier.
18. The assembly of claim 14, wherein the automated gain adjustor adjusts the gain to maintain a selected minimum link budget associated with the assembly.
19. The assembly of claim 14, comprising a mounting base supporting the first antenna, the mounting base being adapted to be secured in a selected position on one side of a window, wherein the coupler is adapted to be secured in a corresponding position on an opposite side of the window and comprising a cable connection between the coupler and the second antenna.
20. The assembly of claim 19, wherein at least the second antenna comprises a directional antenna.
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Cited By (54)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2008027213A3 (en) * 2006-08-29 2008-11-06 Lgc Wireless Inc Distributed antenna communications system and methods of implementing thereof
US20100080203A1 (en) * 2008-09-26 2010-04-01 Superior Modular Products Incorporated Method and Apparatus for Providing Wireless Communications Within a Building
US20100151898A1 (en) * 2008-12-11 2010-06-17 Electronics And Telecommunications Research Institute Transmitter/receiver for wireless communication system
US20100238905A1 (en) * 2007-10-22 2010-09-23 Nec Corporation Wireless communication system, base station, radio resource management method, and control program of base station
US20110103434A1 (en) * 2009-10-29 2011-05-05 Rf Industries Pty Ltd Gain control & frequency stability in digitally-channelised rf bi-directional amplifiers
US8121540B1 (en) * 2008-06-05 2012-02-21 Sprint Communications Company L.P. Repeater system and method for providing wireless communications
US8532566B2 (en) * 2011-06-08 2013-09-10 Andrew Llc System and method for reducing desensitization of a base station transceiver for mobile wireless repeater systems
US9065415B1 (en) 2014-01-28 2015-06-23 Wilson Electronics, Llc Configuring signal boosters
US20160134356A1 (en) * 2014-11-07 2016-05-12 New York University System, device, and method for high-frequency millimeter-wave wireless communication using interface points
DE102006025176B4 (en) * 2006-05-30 2016-05-25 Continental Automotive Gmbh Antenna module for a vehicle
US20160149635A1 (en) * 2014-09-08 2016-05-26 Mimosa Networks, Inc. Wi-Fi Hotspot Repeater
US9420557B2 (en) 2013-08-27 2016-08-16 At&T Mobility Ii Llc Radio repeater system for avoiding mobile device location interference
CN105992330A (en) * 2015-01-28 2016-10-05 中国移动通信集团公司 Gain adjustment method and device
US20160329130A1 (en) * 2015-05-07 2016-11-10 Wilson Electronics, Llc Flat coaxial cable
US9936396B2 (en) 2013-04-29 2018-04-03 Cellphone-Mate, Inc. Apparatus and methods for radio frequency signal boosters
US20180206131A1 (en) * 2017-01-17 2018-07-19 Argela Yazilim ve Bilisim Teknolojileri San. ve Tic. A.S. Method and system for a wireless access transmission network across intersecting electromagnetically shielded regions
US10090943B2 (en) 2014-03-05 2018-10-02 Mimosa Networks, Inc. System and method for aligning a radio using an automated audio guide
US10096933B2 (en) 2013-03-06 2018-10-09 Mimosa Networks, Inc. Waterproof apparatus for cables and cable interfaces
US10117114B2 (en) 2013-03-08 2018-10-30 Mimosa Networks, Inc. System and method for dual-band backhaul radio
US10186786B2 (en) 2013-03-06 2019-01-22 Mimosa Networks, Inc. Enclosure for radio, parabolic dish antenna, and side lobe shields
US10200925B2 (en) 2013-02-19 2019-02-05 Mimosa Networks, Inc. Systems and methods for directing mobile device connectivity
US10425944B2 (en) 2013-02-19 2019-09-24 Mimosa Networks, Inc. WiFi management interface for microwave radio and reset to factory defaults
US10447417B2 (en) 2014-03-13 2019-10-15 Mimosa Networks, Inc. Synchronized transmission on shared channel
US10511074B2 (en) 2018-01-05 2019-12-17 Mimosa Networks, Inc. Higher signal isolation solutions for printed circuit board mounted antenna and waveguide interface
US10547386B2 (en) 2014-04-04 2020-01-28 Nxgen Partners Ip, Llc Re-generation and re-transmission of millimeter waves for building penetration
EP3440778A4 (en) * 2016-04-04 2020-04-01 NxGen Partners IP, LLC Re-generation and re-transmission of millimeter waves for building penetration
US10616903B2 (en) 2014-01-24 2020-04-07 Mimosa Networks, Inc. Channel optimization in half duplex communications systems
US10726353B2 (en) 2015-08-03 2020-07-28 Nxgen Partners Ip, Llc Quantum mechanical framework for interaction of OAM with matter and applications in solid states, biosciences and quantum computing
US10742275B2 (en) 2013-03-07 2020-08-11 Mimosa Networks, Inc. Quad-sector antenna using circular polarization
US10749263B2 (en) 2016-01-11 2020-08-18 Mimosa Networks, Inc. Printed circuit board mounted antenna and waveguide interface
US10785608B2 (en) 2013-05-30 2020-09-22 Mimosa Networks, Inc. Wireless access points providing hybrid 802.11 and scheduled priority access communications
US10887013B2 (en) 2014-04-04 2021-01-05 Nxgen Partners Ip, Llc System and method for communication using orbital angular momentum with multiple layer overlay modulation
US10903906B2 (en) 2017-03-22 2021-01-26 Nxgen Partners Ip, Llc Re-generation and re-transmission of millimeter waves for building penetration using dongle transceivers
US10938110B2 (en) 2013-06-28 2021-03-02 Mimosa Networks, Inc. Ellipticity reduction in circularly polarized array antennas
US20210176719A1 (en) * 2018-03-19 2021-06-10 Pivotal Commware, Inc. Communication of wireless signals through physical barriers
US11069986B2 (en) 2018-03-02 2021-07-20 Airspan Ip Holdco Llc Omni-directional orthogonally-polarized antenna system for MIMO applications
US11190266B1 (en) 2020-05-27 2021-11-30 Pivotal Commware, Inc. RF signal repeater device management for 5G wireless networks
US11245486B2 (en) 2014-10-13 2022-02-08 Nxgen Partners Ip, Llc Application of orbital angular momentum to Fiber, FSO and RF
US11251539B2 (en) 2016-07-29 2022-02-15 Airspan Ip Holdco Llc Multi-band access point antenna array
US11283522B2 (en) 2014-04-04 2022-03-22 Nxgen Partners Ip, Llc System and method for powering re-generation and re-transmission of millimeter waves for building penetration
US11289821B2 (en) 2018-09-11 2022-03-29 Air Span Ip Holdco Llc Sector antenna systems and methods for providing high gain and high side-lobe rejection
US11297606B2 (en) 2020-09-08 2022-04-05 Pivotal Commware, Inc. Installation and activation of RF communication devices for wireless networks
US11374624B2 (en) 2018-07-30 2022-06-28 Pivotal Commware, Inc. Distributed antenna networks for wireless communication by wireless devices
US11451287B1 (en) 2021-03-16 2022-09-20 Pivotal Commware, Inc. Multipath filtering for wireless RF signals
US11497050B2 (en) 2021-01-26 2022-11-08 Pivotal Commware, Inc. Smart repeater systems
US11563279B2 (en) 2020-01-03 2023-01-24 Pivotal Commware, Inc. Dual polarization patch antenna system
US11670849B2 (en) 2020-04-13 2023-06-06 Pivotal Commware, Inc. Aimable beam antenna system
US11757180B2 (en) 2019-02-20 2023-09-12 Pivotal Commware, Inc. Switchable patch antenna
US11843955B2 (en) 2021-01-15 2023-12-12 Pivotal Commware, Inc. Installation of repeaters for a millimeter wave communications network
US11848478B2 (en) 2019-02-05 2023-12-19 Pivotal Commware, Inc. Thermal compensation for a holographic beam forming antenna
US11929822B2 (en) 2021-07-07 2024-03-12 Pivotal Commware, Inc. Multipath repeater systems
US11937199B2 (en) 2022-04-18 2024-03-19 Pivotal Commware, Inc. Time-division-duplex repeaters with global navigation satellite system timing recovery
US11956035B2 (en) 2014-10-13 2024-04-09 Nxgen Partners Ip, Llc System and method for combining MIMO and mode-division multiplexing
US11968593B2 (en) 2020-08-03 2024-04-23 Pivotal Commware, Inc. Wireless communication network management for user devices based on real time mapping

Families Citing this family (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
IL166804A (en) * 2005-02-10 2012-08-30 Cellvine Ltd Apparatus and method for traffic load balancing in wireless networks
US20080108312A1 (en) * 2006-11-06 2008-05-08 Fujitsu Limited Switchable transceiver for relay station
US20090045939A1 (en) * 2007-07-31 2009-02-19 Johnson Controls Technology Company Locating devices using wireless communications
US8542623B2 (en) 2010-01-13 2013-09-24 Qualcomm Incorporated Use of RF reference in a digital baseband interference cancellation repeater
US8937874B2 (en) 2011-09-23 2015-01-20 Qualcomm Incorporated Adjusting repeater gains based upon received downlink power level
IN2014KN01437A (en) * 2011-12-09 2015-10-23 Ericsson Telefon Ab L M
CN104782195B (en) * 2012-09-28 2019-06-14 瑞典爱立信有限公司 The method of the output power of adaptation wireless transmitter and corresponding radio node
US10684030B2 (en) 2015-03-05 2020-06-16 Honeywell International Inc. Wireless actuator service
US9953474B2 (en) 2016-09-02 2018-04-24 Honeywell International Inc. Multi-level security mechanism for accessing a panel
WO2018094203A1 (en) * 2016-11-18 2018-05-24 Intel IP Corporation 5g mmwave wireless remote radio head system
CN110537338A (en) * 2017-04-11 2019-12-03 威尔逊电子有限责任公司 Signal Booster with coaxial cable connection
TWI664869B (en) * 2017-06-09 2019-07-01 翌勤通訊股份有限公司 Distributed Communication Method and System Thereof
US10789800B1 (en) 2019-05-24 2020-09-29 Ademco Inc. Systems and methods for authorizing transmission of commands and signals to an access control device or a control panel device
US10832509B1 (en) 2019-05-24 2020-11-10 Ademco Inc. Systems and methods of a doorbell device initiating a state change of an access control device and/or a control panel responsive to two-factor authentication

Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20030104781A1 (en) * 2001-12-03 2003-06-05 Son O. Sung Modular residential radio frequency converting repeater
US20030123401A1 (en) * 2001-11-20 2003-07-03 Dean Richard F. Reverse link power controlled repeater
US6640111B1 (en) * 1997-03-03 2003-10-28 Celletra Ltd. Cellular communications systems
US20030220075A1 (en) * 2002-01-09 2003-11-27 Baker Kenneth R. Method and system for identifying and monitoring repeater traffic in a code division multiple access system
US20040001464A1 (en) * 2002-06-27 2004-01-01 Adkins Keith L. Method and apparatus for forward link gain control in a power controlled repeater
US6717980B1 (en) * 1999-05-24 2004-04-06 Koninklijke Philips Electronics N.V. Reduction of transmitter induced cross modulation in a receiver
US20040151238A1 (en) * 2000-01-18 2004-08-05 Masenten Wesley K. Method and apparatus for canceling a transmit signal spectrum in a receiver bandwidth
US7039410B2 (en) * 2003-04-22 2006-05-02 Lucent Technologies Inc. Method of handoff at the border between CDMA underlay and overlay systems
US20060205344A1 (en) * 2003-12-05 2006-09-14 Spotwave Wireless Canada Inc. Distributed repeater architecture
US7209703B1 (en) * 2002-03-14 2007-04-24 Sprint Spectrum L.P. Wireless repeater with intelligent signal display

Family Cites Families (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5056109A (en) * 1989-11-07 1991-10-08 Qualcomm, Inc. Method and apparatus for controlling transmission power in a cdma cellular mobile telephone system
DE19902407A1 (en) 1999-01-22 2000-08-17 Mikom Gmbh Mikrotechnik Zur Ko Method and device for adjusting the gain of a repeater
JP3582484B2 (en) * 2000-12-08 2004-10-27 日本電信電話株式会社 Wireless repeater

Patent Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6640111B1 (en) * 1997-03-03 2003-10-28 Celletra Ltd. Cellular communications systems
US6640110B1 (en) * 1997-03-03 2003-10-28 Celletra Ltd. Scalable cellular communications system
US6717980B1 (en) * 1999-05-24 2004-04-06 Koninklijke Philips Electronics N.V. Reduction of transmitter induced cross modulation in a receiver
US20040151238A1 (en) * 2000-01-18 2004-08-05 Masenten Wesley K. Method and apparatus for canceling a transmit signal spectrum in a receiver bandwidth
US20030123401A1 (en) * 2001-11-20 2003-07-03 Dean Richard F. Reverse link power controlled repeater
US20030104781A1 (en) * 2001-12-03 2003-06-05 Son O. Sung Modular residential radio frequency converting repeater
US20030220075A1 (en) * 2002-01-09 2003-11-27 Baker Kenneth R. Method and system for identifying and monitoring repeater traffic in a code division multiple access system
US7209703B1 (en) * 2002-03-14 2007-04-24 Sprint Spectrum L.P. Wireless repeater with intelligent signal display
US20040001464A1 (en) * 2002-06-27 2004-01-01 Adkins Keith L. Method and apparatus for forward link gain control in a power controlled repeater
US7039410B2 (en) * 2003-04-22 2006-05-02 Lucent Technologies Inc. Method of handoff at the border between CDMA underlay and overlay systems
US20060205344A1 (en) * 2003-12-05 2006-09-14 Spotwave Wireless Canada Inc. Distributed repeater architecture

Cited By (88)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE102006025176C5 (en) 2006-05-30 2023-02-23 Continental Automotive Technologies GmbH Antenna module for a vehicle
DE102006025176B4 (en) * 2006-05-30 2016-05-25 Continental Automotive Gmbh Antenna module for a vehicle
WO2008027213A3 (en) * 2006-08-29 2008-11-06 Lgc Wireless Inc Distributed antenna communications system and methods of implementing thereof
US7848770B2 (en) 2006-08-29 2010-12-07 Lgc Wireless, Inc. Distributed antenna communications system and methods of implementing thereof
US20100238905A1 (en) * 2007-10-22 2010-09-23 Nec Corporation Wireless communication system, base station, radio resource management method, and control program of base station
US9084202B2 (en) * 2007-10-22 2015-07-14 Nec Corporation Wireless communication system, base station, radio resource management method, and control program of base station
US8121540B1 (en) * 2008-06-05 2012-02-21 Sprint Communications Company L.P. Repeater system and method for providing wireless communications
US8325691B2 (en) * 2008-09-26 2012-12-04 Optical Cable Corporation Method and apparatus for providing wireless communications within a building
US20100080203A1 (en) * 2008-09-26 2010-04-01 Superior Modular Products Incorporated Method and Apparatus for Providing Wireless Communications Within a Building
US20100151898A1 (en) * 2008-12-11 2010-06-17 Electronics And Telecommunications Research Institute Transmitter/receiver for wireless communication system
US8750814B2 (en) 2008-12-11 2014-06-10 Electronics And Telecommunications Research Institute Transmitter/receiver for wireless communication system
AU2010236015B2 (en) * 2009-10-29 2014-12-04 Rf Industries Pty Ltd Gain control & frequency stability in digitally-channelised RF bi-directional amplifiers
US20110103434A1 (en) * 2009-10-29 2011-05-05 Rf Industries Pty Ltd Gain control & frequency stability in digitally-channelised rf bi-directional amplifiers
US8787827B2 (en) * 2009-10-29 2014-07-22 Rf Industries Pty Ltd Gain control and frequency stability in digitally-channelised RF bi-directional amplifiers
US10009090B2 (en) 2011-06-08 2018-06-26 Andrew Wireless Systems Gmbh System and method for reducing desensitization of a base station transceiver for mobile wireless repeater systems
US8532566B2 (en) * 2011-06-08 2013-09-10 Andrew Llc System and method for reducing desensitization of a base station transceiver for mobile wireless repeater systems
US9553656B2 (en) * 2011-06-08 2017-01-24 Andrew Wireless Systems Gmbh System and method for reducing desensitization of a base station transceiver for mobile wireless repeater systems
US20140011442A1 (en) * 2011-06-08 2014-01-09 Andrew Llc System and method for reducing desensitization of a base station transceiver for mobile wireless repeater systems
US10200925B2 (en) 2013-02-19 2019-02-05 Mimosa Networks, Inc. Systems and methods for directing mobile device connectivity
US10425944B2 (en) 2013-02-19 2019-09-24 Mimosa Networks, Inc. WiFi management interface for microwave radio and reset to factory defaults
US10863507B2 (en) 2013-02-19 2020-12-08 Mimosa Networks, Inc. WiFi management interface for microwave radio and reset to factory defaults
US10595253B2 (en) 2013-02-19 2020-03-17 Mimosa Networks, Inc. Systems and methods for directing mobile device connectivity
US10790613B2 (en) 2013-03-06 2020-09-29 Mimosa Networks, Inc. Waterproof apparatus for pre-terminated cables
US10186786B2 (en) 2013-03-06 2019-01-22 Mimosa Networks, Inc. Enclosure for radio, parabolic dish antenna, and side lobe shields
US10096933B2 (en) 2013-03-06 2018-10-09 Mimosa Networks, Inc. Waterproof apparatus for cables and cable interfaces
US10742275B2 (en) 2013-03-07 2020-08-11 Mimosa Networks, Inc. Quad-sector antenna using circular polarization
US10812994B2 (en) 2013-03-08 2020-10-20 Mimosa Networks, Inc. System and method for dual-band backhaul radio
US10117114B2 (en) 2013-03-08 2018-10-30 Mimosa Networks, Inc. System and method for dual-band backhaul radio
US9936396B2 (en) 2013-04-29 2018-04-03 Cellphone-Mate, Inc. Apparatus and methods for radio frequency signal boosters
US11228921B2 (en) 2013-04-29 2022-01-18 Cellphone-Mate, Inc. Apparatus and methods for radio frequency signal boosters
US10313893B2 (en) 2013-04-29 2019-06-04 Cellphone-Mate, Inc. Apparatus and methods for radio frequency signal boosters
US10785608B2 (en) 2013-05-30 2020-09-22 Mimosa Networks, Inc. Wireless access points providing hybrid 802.11 and scheduled priority access communications
US11482789B2 (en) 2013-06-28 2022-10-25 Airspan Ip Holdco Llc Ellipticity reduction in circularly polarized array antennas
US10938110B2 (en) 2013-06-28 2021-03-02 Mimosa Networks, Inc. Ellipticity reduction in circularly polarized array antennas
US9420557B2 (en) 2013-08-27 2016-08-16 At&T Mobility Ii Llc Radio repeater system for avoiding mobile device location interference
US9735909B2 (en) 2013-08-27 2017-08-15 At&T Mobility Ii Llc Radio repeater system for avoiding mobile device location interference
US10616903B2 (en) 2014-01-24 2020-04-07 Mimosa Networks, Inc. Channel optimization in half duplex communications systems
US9065415B1 (en) 2014-01-28 2015-06-23 Wilson Electronics, Llc Configuring signal boosters
US10090943B2 (en) 2014-03-05 2018-10-02 Mimosa Networks, Inc. System and method for aligning a radio using an automated audio guide
US11888589B2 (en) 2014-03-13 2024-01-30 Mimosa Networks, Inc. Synchronized transmission on shared channel
US10447417B2 (en) 2014-03-13 2019-10-15 Mimosa Networks, Inc. Synchronized transmission on shared channel
US11283522B2 (en) 2014-04-04 2022-03-22 Nxgen Partners Ip, Llc System and method for powering re-generation and re-transmission of millimeter waves for building penetration
US11901943B2 (en) 2014-04-04 2024-02-13 Nxgen Partners Ip, Llc System and method for powering re-generation and re-transmission of millimeter waves for building penetration
US10547386B2 (en) 2014-04-04 2020-01-28 Nxgen Partners Ip, Llc Re-generation and re-transmission of millimeter waves for building penetration
US10887013B2 (en) 2014-04-04 2021-01-05 Nxgen Partners Ip, Llc System and method for communication using orbital angular momentum with multiple layer overlay modulation
US11626921B2 (en) 2014-09-08 2023-04-11 Airspan Ip Holdco Llc Systems and methods of a Wi-Fi repeater device
US20160149635A1 (en) * 2014-09-08 2016-05-26 Mimosa Networks, Inc. Wi-Fi Hotspot Repeater
US10958332B2 (en) * 2014-09-08 2021-03-23 Mimosa Networks, Inc. Wi-Fi hotspot repeater
US11245486B2 (en) 2014-10-13 2022-02-08 Nxgen Partners Ip, Llc Application of orbital angular momentum to Fiber, FSO and RF
US11956035B2 (en) 2014-10-13 2024-04-09 Nxgen Partners Ip, Llc System and method for combining MIMO and mode-division multiplexing
US10547372B2 (en) * 2014-11-07 2020-01-28 New York University System, device, and method for high-frequency millimeter-wave wireless communication using interface points
US20160134356A1 (en) * 2014-11-07 2016-05-12 New York University System, device, and method for high-frequency millimeter-wave wireless communication using interface points
CN105992330A (en) * 2015-01-28 2016-10-05 中国移动通信集团公司 Gain adjustment method and device
US20160329130A1 (en) * 2015-05-07 2016-11-10 Wilson Electronics, Llc Flat coaxial cable
US10726353B2 (en) 2015-08-03 2020-07-28 Nxgen Partners Ip, Llc Quantum mechanical framework for interaction of OAM with matter and applications in solid states, biosciences and quantum computing
US11164104B2 (en) 2015-08-03 2021-11-02 Nxgen Partners Ip, Llc Quantum mechanical framework for interaction of OAM with matter and applications in solid states, biosciences and quantum computing
US10749263B2 (en) 2016-01-11 2020-08-18 Mimosa Networks, Inc. Printed circuit board mounted antenna and waveguide interface
EP3440778A4 (en) * 2016-04-04 2020-04-01 NxGen Partners IP, LLC Re-generation and re-transmission of millimeter waves for building penetration
US11251539B2 (en) 2016-07-29 2022-02-15 Airspan Ip Holdco Llc Multi-band access point antenna array
US20180206131A1 (en) * 2017-01-17 2018-07-19 Argela Yazilim ve Bilisim Teknolojileri San. ve Tic. A.S. Method and system for a wireless access transmission network across intersecting electromagnetically shielded regions
US10200876B2 (en) * 2017-01-17 2019-02-05 Argela Yazilim ve Bilisim Teknolojileri San. ve Tic. A.S. Method and system for a wireless access transmission network across intersecting electromagnetically shielded regions
US10903906B2 (en) 2017-03-22 2021-01-26 Nxgen Partners Ip, Llc Re-generation and re-transmission of millimeter waves for building penetration using dongle transceivers
US10511074B2 (en) 2018-01-05 2019-12-17 Mimosa Networks, Inc. Higher signal isolation solutions for printed circuit board mounted antenna and waveguide interface
US10714805B2 (en) 2018-01-05 2020-07-14 Milmosa Networks, Inc. Higher signal isolation solutions for printed circuit board mounted antenna and waveguide interface
US11637384B2 (en) 2018-03-02 2023-04-25 Airspan Ip Holdco Llc Omni-directional antenna system and device for MIMO applications
US11069986B2 (en) 2018-03-02 2021-07-20 Airspan Ip Holdco Llc Omni-directional orthogonally-polarized antenna system for MIMO applications
US11404796B2 (en) 2018-03-02 2022-08-02 Airspan Ip Holdco Llc Omni-directional orthogonally-polarized antenna system for MIMO applications
US11706722B2 (en) * 2018-03-19 2023-07-18 Pivotal Commware, Inc. Communication of wireless signals through physical barriers
US20210176719A1 (en) * 2018-03-19 2021-06-10 Pivotal Commware, Inc. Communication of wireless signals through physical barriers
US11431382B2 (en) 2018-07-30 2022-08-30 Pivotal Commware, Inc. Distributed antenna networks for wireless communication by wireless devices
US11374624B2 (en) 2018-07-30 2022-06-28 Pivotal Commware, Inc. Distributed antenna networks for wireless communication by wireless devices
US11289821B2 (en) 2018-09-11 2022-03-29 Air Span Ip Holdco Llc Sector antenna systems and methods for providing high gain and high side-lobe rejection
US11848478B2 (en) 2019-02-05 2023-12-19 Pivotal Commware, Inc. Thermal compensation for a holographic beam forming antenna
US11757180B2 (en) 2019-02-20 2023-09-12 Pivotal Commware, Inc. Switchable patch antenna
US11563279B2 (en) 2020-01-03 2023-01-24 Pivotal Commware, Inc. Dual polarization patch antenna system
US11670849B2 (en) 2020-04-13 2023-06-06 Pivotal Commware, Inc. Aimable beam antenna system
US11190266B1 (en) 2020-05-27 2021-11-30 Pivotal Commware, Inc. RF signal repeater device management for 5G wireless networks
US11424815B2 (en) 2020-05-27 2022-08-23 Pivotal Commware, Inc. RF signal repeater device management for 5G wireless networks
US11973568B2 (en) 2020-05-27 2024-04-30 Pivotal Commware, Inc. RF signal repeater device management for 5G wireless networks
US11968593B2 (en) 2020-08-03 2024-04-23 Pivotal Commware, Inc. Wireless communication network management for user devices based on real time mapping
US11844050B2 (en) 2020-09-08 2023-12-12 Pivotal Commware, Inc. Installation and activation of RF communication devices for wireless networks
US11297606B2 (en) 2020-09-08 2022-04-05 Pivotal Commware, Inc. Installation and activation of RF communication devices for wireless networks
US11843955B2 (en) 2021-01-15 2023-12-12 Pivotal Commware, Inc. Installation of repeaters for a millimeter wave communications network
US11497050B2 (en) 2021-01-26 2022-11-08 Pivotal Commware, Inc. Smart repeater systems
US12010703B2 (en) 2021-01-26 2024-06-11 Pivotal Commware, Inc. Smart repeater systems
US11451287B1 (en) 2021-03-16 2022-09-20 Pivotal Commware, Inc. Multipath filtering for wireless RF signals
US11929822B2 (en) 2021-07-07 2024-03-12 Pivotal Commware, Inc. Multipath repeater systems
US11937199B2 (en) 2022-04-18 2024-03-19 Pivotal Commware, Inc. Time-division-duplex repeaters with global navigation satellite system timing recovery

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